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Catalytic transformation of microplastics to functional carbon for catalytic peroxymonosulfate activation: Conversion mechanism and defect of scavenging

Applied Catalysis B: Environmental 2023 51 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 50 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Kunsheng Hu, Kunsheng Hu, Wenjie Tian, Shiying Ren, Shiying Ren, Kunsheng Hu, Kunsheng Hu, Shiying Ren, Shiying Ren, Kunsheng Hu, Kunsheng Hu, Xin Xu, Xin Xu, Kunsheng Hu, Yangyang Yang, Yangyang Yang, Jiabao Yi Wenjie Tian, Kunsheng Hu, Xiaoguang Duan, Kunsheng Hu, Zhong‐Shuai Zhu, Xiaoguang Duan, Xiaoguang Duan, Zhong‐Shuai Zhu, Kunsheng Hu, Yangyang Yang, Jiabao Yi Yangyang Yang, Wenjie Tian, Wenjie Tian, Wenjie Tian, Shaobin Wang, Shaobin Wang, Shaobin Wang, Xiaoguang Duan, Yangyang Yang, Xiaoguang Duan, Wenjie Tian, Shaobin Wang, Kunsheng Hu, Shaobin Wang, Xiaoguang Duan, Kunsheng Hu, Shaobin Wang, Shaobin Wang, Xiaoguang Duan, Xiaoguang Duan, Kunsheng Hu, Jiabao Yi Xiaoguang Duan, Shaobin Wang, Kunsheng Hu, Xiaoguang Duan, Shaobin Wang, Shaobin Wang, Xiaoguang Duan, Shaobin Wang, Jiabao Yi Jiabao Yi Shaobin Wang, Shaobin Wang, Shuang Zhong, Jiabao Yi Shaobin Wang, Shaobin Wang, Xiaoguang Duan, Shaobin Wang, Shaobin Wang, Shaobin Wang, Shaobin Wang, Jiabao Yi Jiabao Yi

Summary

Researchers developed a method to convert high-density polyethylene plastic waste into functional carbon materials that can activate peroxymonosulfate to break down organic pollutants in water. Using a salt template-based approach with nickel chloride, they produced carbon nanosheets with high catalytic efficiency. The study demonstrates a promising approach for upcycling plastic waste into useful water purification catalysts.

Polymers

Plastic wastes were catalytically transformed into different structured carbons as effective catalysts for peroxymonosulfate activation to degrade organic pollutants in water and the catalytic conversion mechanism was comprehensively investigated. A salt template-based carbonization approach was successfully developed to catalytically converting high-density polyethylene (HDPE) into diverse carbon materials, such as core-shell carbon composites, nanosheets, and their hybrids. The morphology and proportions of structure defective carbon were found to be controlled by a NiCl2 to HDPE ratio. Carbon nanosheets performed excellent catalytic efficiency in peroxymonosulfate activation toward phenol oxidation, due to a high content of reactive defects via a nonradical electron-transfer mechanism. More importantly, deliberate experiment design and kinetic analyses were employed to illustrate the artifact of radical scavengers (e.g., ethanol) in mechanistic investigation for nonradical/radical reaction. This work provides a upcycle approach for waste plastics into carbocatalysts and new insight to the conversion process and advanced water purification.

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